Improved visible light photocatalytic activity of mesoporous FeVO4 nanorods synthesized using a reactable ionic liquid
暂无分享,去创建一个
Zhigang Chen | Hua-ming Li | J. Xia | Mindong Chen | Junze Zhao | Mengxia Ji | Hanxiang Chen | Jie Zeng | M. Ji
[1] Zhigang Chen,et al. Oxygen vacancies modulated Bi-rich bismuth oxyiodide microspheres with tunable valence band position to boost the photocatalytic activity. , 2019, Journal of colloid and interface science.
[2] C. Martínez-Huitle,et al. Heterogeneous electro-Fenton and photoelectro-Fenton processes: A critical review of fundamental principles and application for water/wastewater treatment , 2018, Applied Catalysis B: Environmental.
[3] Runliang Zhu,et al. Heterogeneous photo-Fenton degradation of bisphenol A over Ag/AgCl/ferrihydrite catalysts under visible light , 2018, Chemical Engineering Journal.
[4] Jiarui Li,et al. Synergistic photo-thermal catalytic NO purification of MnO x /g-C 3 N 4 : Enhanced performance and reaction mechanism , 2018 .
[5] 董帆,et al. MnO x /g-C 3 N 4 光热协同催化净化NO的性能增强和反应机理 , 2018 .
[6] Zhongbiao Wu,et al. Unraveling the Mechanisms of Visible Light Photocatalytic NO Purification on Earth-Abundant Insulator-Based Core-Shell Heterojunctions. , 2018, Environmental science & technology.
[7] F. Dong,et al. Visible-light-induced charge transfer pathway and photocatalysis mechanism on Bi semimetal@defective BiOBr hierarchical microspheres , 2018 .
[8] Zhigang Chen,et al. Graphene-like boron nitride induced accelerated charge transfer for boosting the photocatalytic behavior of Bi4O5I2 towards bisphenol a removal , 2018 .
[9] Hong Wang,et al. In situ FT-IR investigation on the reaction mechanism of visible light photocatalytic NO oxidation with defective g-C3N4. , 2017, Science bulletin.
[10] Yihe Zhang,et al. Macroscopic Polarization Enhancement Promoting Photo- and Piezoelectric-Induced Charge Separation and Molecular Oxygen Activation. , 2017, Angewandte Chemie.
[11] R. Andreozzi,et al. Homogeneous photo-Fenton processes at near neutral pH: A review , 2017 .
[12] Xiaoping Wang,et al. Enhanced plasmonic photocatalysis by SiO 2 @Bi microspheres with hot-electron transportation channels via Bi–O–Si linkages , 2017 .
[13] G. Zeng,et al. Insight into highly efficient simultaneous photocatalytic removal of Cr(VI) and 2,4-diclorophenol under visible light irradiation by phosphorus doped porous ultrathin g-C3N4 nanosheets from aqueous media: Performance and reaction mechanism , 2017 .
[14] Bin Wang,et al. Improved photocatalytic activity of few-layer Bi4O5I2 nanosheets induced by efficient charge separation and lower valence position , 2017 .
[15] G. Assche,et al. Synthesis, growth mechanism, and photocatalytic activity of Zinc oxide nanostructures: porous microparticles versus nonporous nanoparticles , 2017, Journal of Materials Science.
[16] Yong Kang,et al. Synthesis of novel Au/FeVO4/Bi2O3 heterojunction for efficient visible-light-driven photocatalysis , 2016 .
[17] Yihe Zhang,et al. In situ assembly of BiOI@Bi12O17Cl2 p-n junction: charge induced unique front-lateral surfaces coupling heterostructure with high exposure of BiOI {001} active facets for robust and nonselective photocatalysis , 2016 .
[18] Cheng Sun,et al. Fabrication of FeVO4/Fe2TiO5 composite catalyst and photocatalytic removal of norfloxacin , 2016 .
[19] Zhigang Chen,et al. New insight of Ag quantum dots with the improved molecular oxygen activation ability for photocatalytic applications , 2016 .
[20] Zhigang Chen,et al. Ionic liquid-assisted strategy for bismuth-rich bismuth oxybromides nanosheets with superior visible light-driven photocatalytic removal of bisphenol-A. , 2016, Journal of colloid and interface science.
[21] Zhigang Chen,et al. Ionic liquid-induced strategy for FeWO4 microspheres with advanced visible light photocatalysis , 2016 .
[22] S. Kim,et al. Mesoporous sulfur-modified iron oxide as an effective Fenton-like catalyst for degradation of bisphenol A , 2016 .
[23] Adriana Zaleska-Medynska,et al. Ionic liquids for nano- and microstructures preparation. Part 1: Properties and multifunctional role. , 2016, Advances in colloid and interface science.
[24] Shaojun Guo,et al. Ionic liquid-induced strategy for carbon quantum dots/BiOX (X = Br, Cl) hybrid nanosheets with superior visible light-driven photocatalysis , 2016 .
[25] C. Bhattacharya,et al. Development of ternary iron vanadium oxide semiconductors for applications in photoelectrochemical water oxidation , 2016 .
[26] D. Sarkar,et al. Metal oxide semiconductors for dye degradation , 2015 .
[27] S. Bagheri,et al. Progress on mesoporous titanium dioxide: Synthesis, modification and applications , 2015 .
[28] Cheng Sun,et al. Facile synthesis and high activity of novel BiVO4/FeVO4 heterojunction photocatalyst for degradation of metronidazole , 2015 .
[29] J. Aitken,et al. Role of mechanochemical milling in FeVO 4 synthesis , 2015 .
[30] D. Ferri,et al. Generation of NH3 Selective Catalytic Reduction Active Catalysts from Decomposition of Supported FeVO4 , 2015 .
[31] Yun‐Sung Lee,et al. Synthesis, characterization and electrochemical performances of nanocrystalline FeVO4 as negative and LiCoPO4 as positive electrode for asymmetric supercapacitor , 2015 .
[32] Yihe Zhang,et al. Anionic Group Self-Doping as a Promising Strategy: Band-Gap Engineering and Multi-Functional Applications of High-Performance CO32–-Doped Bi2O2CO3 , 2015 .
[33] C. Pulgarin,et al. Iron oxides semiconductors are efficients for solar water disinfection: A comparison with photo-Fenton processes at neutral pH , 2015 .
[34] V. Bello,et al. Highly photo-catalytically active hierarchical 3D porous/urchin nanostructured Co3O4 coating synthesized by Pulsed Laser Deposition , 2015 .
[35] B. Ozturk,et al. Synthesis of surfactant-assisted FeVO4 nanostructure: Characterization and photocatalytic degradation of phenol , 2015 .
[36] Yihe Zhang,et al. Fabrication of multiple heterojunctions with tunable visible-light-active photocatalytic reactivity in BiOBr-BiOI full-range composites based on microstructure modulation and band structures. , 2015, ACS applied materials & interfaces.
[37] Guoqiang Tan,et al. Enhanced magnetic property and photocatalytic activity of UV-light responsive N-doped Fe2O3/FeVO4 heterojunction , 2015 .
[38] S. Singhal,et al. Tailoring the photo-Fenton activity of spinel ferrites (MFe2O4) by incorporating different cations (M = Cu, Zn, Ni and Co) in the structure , 2015 .
[39] Li Xu,et al. Reactable ionic liquid-assisted rapid synthesis of BiOI hollow microspheres at room temperature with enhanced photocatalytic activity , 2014 .
[40] J. Xu,et al. Hydrothermal growth and characterization of length tunable porous iron vanadate one-dimensional nanostructures , 2014 .
[41] Lide Zhang,et al. Novel low-cost Fenton-like layered Fe-titanate catalyst: preparation, characterization and application for degradation of organic colorants. , 2014, Journal of colloid and interface science.
[42] L. Ai,et al. Iron terephthalate metal–organic framework: Revealing the effective activation of hydrogen peroxide for the degradation of organic dye under visible light irradiation , 2014 .
[43] Minqi Sheng,et al. Hydrothermal route to metastable phase FeVO4 ultrathin nanosheets with exposed {010} facets: synthesis, photocatalysis and gas-sensing , 2014 .
[44] D. Duprez,et al. Shape-controlled nanostructured magnetite-type materials as highly efficient Fenton catalysts , 2014 .
[45] Xuchuan Jiang,et al. Porous FeVO4 nanorods: synthesis, characterization, and gas-sensing properties toward volatile organic compounds , 2013, Journal of Nanoparticle Research.
[46] Hua-ming Li,et al. Ionic liquid assisted synthesis and photocatalytic properties of α-Fe2O3 hollow microspheres. , 2013, Dalton transactions.
[47] Rajan Gandhimathi,et al. Degradation of dyes from aqueous solution by Fenton processes: a review , 2013, Environmental Science and Pollution Research.
[48] Yankui Tang,et al. Degradation of organic pollutants by an integrated photo-Fenton-like catalysis/immersed membrane separation system. , 2013, Journal of hazardous materials.
[49] H. Hng,et al. Direct growth of FeVO4 nanosheet arrays on stainless steel foil as high-performance binder-free Li ion battery anode , 2012 .
[50] R. Selvan,et al. Synthesis and characterization of FeVO4 nanoparticles , 2011 .
[51] Jun Ma,et al. Strong enhancement on fenton oxidation by addition of hydroxylamine to accelerate the ferric and ferrous iron cycles. , 2011, Environmental science & technology.
[52] Jun Chen,et al. Controllable synthesis and characterization of porous FeVO4 nanorods and nanoparticles , 2011 .
[53] R. Selvan,et al. Synthesis, electrical and dielectric properties of FeVO4 nanoparticles , 2011 .
[54] P. Peng,et al. One-pot hydrothermal synthesis of ZnSe hollow nanospheres from an ionic liquid precursor. , 2010, Langmuir : the ACS journal of surfaces and colloids.
[55] B. Theng,et al. Clays and oxide minerals as catalysts and nanocatalysts in Fenton-like reactions — A review , 2010 .
[56] Hua-ming Li,et al. Microwave-assisted synthesis of flower-like and leaf-like CuO nanostructures via room-temperature ionic liquids , 2009 .
[57] C. Du,et al. FeVO4 as a highly active heterogeneous Fenton-like catalyst towards the degradation of Orange II , 2008 .
[58] K. Melghit,et al. New form of iron orthovanadate FeVO4·1.5H2O prepared at normal pressure and low temperature , 2007 .
[59] D. Armstrong,et al. Surfactant solvation effects and micelle formation in ionic liquids. , 2003, Chemical communications.
[60] B. E. Robertson,et al. Crystal structure and Mössbauer effect investigation of FeVO4 , 1972 .